Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels

This dissertation presents a numerical simulation of three-dimensional flow and heat transfer in a channel with a backward-facing step. Flow was considered to be steady, incompressible, and laminar. The flow medium was treated to be radiatively participating. Governing momentum equations, energy equ...

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Main Author: Ko, Min Seok
Other Authors: Anand, N.K
Format: Others
Language:en_US
Published: 2010
Subjects:
Online Access:http://hdl.handle.net/1969.1/ETD-TAMU-2542
http://hdl.handle.net/1969.1/ETD-TAMU-2542
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-ETD-TAMU-25422013-01-08T10:39:41ZNumerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channelsKo, Min SeokCombined mode heat transferRadiationbackward-facing stepXu lineThis dissertation presents a numerical simulation of three-dimensional flow and heat transfer in a channel with a backward-facing step. Flow was considered to be steady, incompressible, and laminar. The flow medium was treated to be radiatively participating. Governing momentum equations, energy equation, and the radiative equation were solved by a finite volume method. Extensive validation studies were carried out. As part of the validation study, three-dimensional combined convection and radiation in a rectangular channel without a backward-facing step was studied. The SIMPLE algorithm was used to link pressure and velocity fields. The combined convective-radiative heat transfer were studied by varying three parameters, i.e. optical thickness ( H τ =0.1, 0.2, and 0.4) and scattering albedo ( ω=0, 0.25, 0.5, 0.75 and 1). Variation of thermophysical properties with temperature was considered in this study. In this work consideration was given only to cooling. Effects of those radiative parameters on velocity, bulk temperature, and Nusselt number are presented in detail. The fluid with a hot inlet compared to a cold wall was cooled in a relatively short distance from the channel inlet because of the radiation effect. The thermal penetration decreased with a decrease in optical thickness and an increase in scattering albedo. Thermal penetration increased with increasing optical thickness and decreasing scattering albedo. The reattachment length varied with temperature due to variation of thermophysical properties with temperature.Anand, N.K2010-01-15T00:11:58Z2010-01-16T00:40:04Z2010-01-15T00:11:58Z2010-01-16T00:40:04Z2007-122009-05-15BookThesisElectronic Dissertationtextelectronicapplication/pdfborn digitalhttp://hdl.handle.net/1969.1/ETD-TAMU-2542http://hdl.handle.net/1969.1/ETD-TAMU-2542en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic Combined mode heat transfer
Radiation
backward-facing step
Xu line
spellingShingle Combined mode heat transfer
Radiation
backward-facing step
Xu line
Ko, Min Seok
Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
description This dissertation presents a numerical simulation of three-dimensional flow and heat transfer in a channel with a backward-facing step. Flow was considered to be steady, incompressible, and laminar. The flow medium was treated to be radiatively participating. Governing momentum equations, energy equation, and the radiative equation were solved by a finite volume method. Extensive validation studies were carried out. As part of the validation study, three-dimensional combined convection and radiation in a rectangular channel without a backward-facing step was studied. The SIMPLE algorithm was used to link pressure and velocity fields. The combined convective-radiative heat transfer were studied by varying three parameters, i.e. optical thickness ( H τ =0.1, 0.2, and 0.4) and scattering albedo ( ω=0, 0.25, 0.5, 0.75 and 1). Variation of thermophysical properties with temperature was considered in this study. In this work consideration was given only to cooling. Effects of those radiative parameters on velocity, bulk temperature, and Nusselt number are presented in detail. The fluid with a hot inlet compared to a cold wall was cooled in a relatively short distance from the channel inlet because of the radiation effect. The thermal penetration decreased with a decrease in optical thickness and an increase in scattering albedo. Thermal penetration increased with increasing optical thickness and decreasing scattering albedo. The reattachment length varied with temperature due to variation of thermophysical properties with temperature.
author2 Anand, N.K
author_facet Anand, N.K
Ko, Min Seok
author Ko, Min Seok
author_sort Ko, Min Seok
title Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
title_short Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
title_full Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
title_fullStr Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
title_full_unstemmed Numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
title_sort numerical simulation of three-dimensional combined convective radiative heat transfer in rectangular channels
publishDate 2010
url http://hdl.handle.net/1969.1/ETD-TAMU-2542
http://hdl.handle.net/1969.1/ETD-TAMU-2542
work_keys_str_mv AT kominseok numericalsimulationofthreedimensionalcombinedconvectiveradiativeheattransferinrectangularchannels
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